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Nickel‐free high‐nitrogen‐alloyed stainless steels like the P2000 (X13CrMnMoN18‐14‐3) were developed to enhance the strength and corrosion resistance of austenitic stainless steels like 304 and 316 while keeping the typical high ductility. The mechanical and corrosive properties of P2000 were investigated and compared with 304 and 316 to highlight the application opportunities of this new alloy. The microstructure of the solution‐annealed condition was characterised by electron backscatter diffraction and the mechanical properties were studied by uniaxial tensile tests, Charpy impact tests and hardness measurements. The passivation behaviour was analysed using the electrochemical potentiodynamic reactivation, whereas the pitting corrosion resistance was compared by pitting potentials and pitting temperatures. However, secondary thermal influences or suboptimal heat treatment can impair the corrosion resistance due to the precipitation of secondary phases and the resulting sensitisation. Thermodynamic calculations and artificial ageing treatment in the range of 500–900°C for up to 100 h were used to determine critical time–temperature parameters for sensitisation. The microstructure of the various aged states was evaluated by scanning electron microscopy and compared with the degrading corrosion resistance characterised by the KorroPad method.
Ageing at 600 °C (from 0.1 h up to 20 h) leads to the formation of precipitations at the ferrite-ferrite (α/α) and ferrite-austenite (α/γ) grain boundaries of the lean duplex stainless steel (LDSS) X2CrNiN22-2. This leads to sensitisation due to chromium depletion and decreased pitting corrosion resistance proven by the results of various electrochemical methods (DL-EPR and determination of CPT, Epit). These results were compared with the KorroPad method, which uses an agar-based gel-electrolyte for the detection of stainless steel surfaces prone to pitting corrosion. However, the standard configuration of the KorroPad showed no differentiation for the various ageing conditions. Therefore, modified versions of the KorroPad with two, five and ten times higher NaCl and potassium ferrocyanide III (K3[Fe(CN)6]) concentrations were successfully used to visualise the behaviour detected by DL-EPR, Epit and CPT. Therefore, the KorroPad method can also detect a microstructure related reduction of pitting corrosion resistance, which can drastically reduce the experimental effort to generate sensitisation diagrams for stainless steels.
The influence of isothermal ageing on microstructure, sensitisation and pitting corrosion resistance of the lean duplex stainless steel (LDSS) X2CrNiN23-4 was investigated with various electrochemical methods. The aging at 600 °C (from 0.1 h up to 20 h) lead to the formation of precipitations at the ferrite-ferrite (α/α) and ferrite-austenite (α/γ) grain boundaries, inducing sensitisation due to chromium depletion. The degree of sensitisation was evaluated with the double loop electrochemical potentiokinetic reactivation method (DL-EPR) according to ASTM G108 and correlated with critical pitting potentials (Epit) as well as critical pitting temperature (CPT) measured in an electrolyte according to ASTM G48 using electrochemical noise. Up to an ageing time of 1 h, the sensitisation did rise significantly, stabilising at a nearly constant level with a slight drop at 20 h. This behaviour correlated perfectly with the potentiodynamically determined pitting potentials Epit and sensitisation. The CPT showed a higher sensitivity at short ageing times compared to the DL-EPR and Epit. Finally, the KorroPad method was applied to visualise the sensitisation induced reduction of pitting corrosion resistance. The “KorroPad” is an agar-based gel-electrolyte containing 0.1 mol/l sodium chloride (NaCl) and 0.1 mol/l potassium ferricyanide III (K3[Fe(CN)6]), invented at the Federal Institute of Materials Research and Testing in Berlin (Germany) to detect surfaces of stainless steel prone to pitting corrosion. The standard configuration of the KorroPad showed no differentiation for the various aging conditions. Increasing the concentration of both NaCl and potassium ferrocyanide III to 0.5 M shifts the detection limit of the KorroPad method to stainless steels with higher corrosion resistance, producing the same trends detected by standard electrochemical pitting corrosion values (Epit, CPT) and sensitisation (DL-EPR). By that, the KorroPad method was successfully adjusted to the lean-duplex stainless steel X2CrNiN23-4, enabling short-time testing to detect sensitization.
The development of organic coatings for corrosion protection is an elaborate process with a multitude of often interminable investigations and tests of protection properties. Electrochemical methods support the processes of development to a great extent and help to understand mechanisms of action and failure. They are usually carried out on applied coating systems with a completed formulation. An examination possibility is presented in this publication that enables the characterization of waterbased coatings with different formulation variations in the liquid (aqueous) state with the aid of electrochemical noise technique. Thus, selection of binders, pigments, and other additives is supported essentially and made more efficient in a very early Phase of formulation development. The paper shows that a unique insight into the dynamic processes of a metal in contact with an aqueous coating dispersion is possible using the example of the development of zinc-free corrosion-inhibiting pigments for waterbased coatings. In addition, it is presented in which way the results correlate with the performance of applied coatings.
Elektrochemisches Rauschen von unlegiertem Stahl in wasserbasierten Bindemittel-Pigment-Gemischen
(2017)
Die Entwicklung von Beschichtungen für den Korrosionsschutz ist ein aufwändiger Prozess mit einer Vielzahl von oftmals langwierigen Untersuchungen und Prüfungen der Schutzeigenschaften.
Elektrochemische Methoden unterstützen die Entwicklungsprozesse in hohem Maße und helfen beim Verstehen von Wirk- und Schadensmechanismen. Sie werden meistens an fertig formulierten und applizierten Beschichtungssystemen vorgenommen. Es wird eine Untersuchungsmöglichkeit vorgestellt, bei der sich wasserbasierte Beschichtungsstoffe in unterschiedlichen Formulierungsvarianten bereits im flüssigen Zustand mit Hilfe des elektrochemischen Rauschens charakterisieren lassen. Damit ist es möglich, bereits in einer sehr frühen Phase der Formulierungsentwicklung die Auswahl von Bindemitteln, Pigmenten und weiteren Zusatzstoffen entscheidend zu unterstützen und effizienter zu gestalten. Am Beispiel der Entwicklung von zinkfreien Korrosionsschutzpigmenten für wasserbasierte Beschichtungen
wird gezeigt, dass ein einzigartiger Einblick in die dynamischen Prozesse bei Kontakt eines Metalls mit der wässrigen Beschichtungsdispersion möglich ist und wie dies mit der Performance der Beschichtungen korreliert.
. Hard coated steel components are used in a wide application range, mostly for protective, wear resistant and decorative purposes. Despite of these coatings being regarded as relatively dense, there is always a high risk of localized corrosion when a coated low alloyed steel component encounters a surrounding high humidity atmosphere or even an aqueous medium. An approach to enhance the corrosion properties is the addition of magnesium to physical vapor deposited hard coatings, like TiN. It has been found that there is a remarkable increase in corrosion resistance in dependence of magnesium content of the TiMgN coating and its surface properties. In this work the authors will explain the underlying corrosion protection mechanisms by means of electrochemical and analytical studies. The positive impact of magnesium in the coating relates on its preferred dissolution vs. steel. This causes the potential to shift to more negative direction with respect to the steel substrate and additionally leads to a temporarily passivation of the steel due to alkalization of the surrounding electrolyte by formation of magnesium hydroxide.
Hard coated steel components are used in a wide application range, mostly for protective, wear resistant and decorative purposes. Despite of these coatings being regarded as relatively dense, there is always a high risk of localized corrosion when a coated low alloyed steel component encounters a surrounding high humidity atmosphere or even an aqueous medium. An approach to enhance the corrosion properties is the addition of magnesium to physical vapor deposited hard coatings, like TiN. It has been found that there is a remarkable increase in corrosion resistance in dependence of magnesium content of the TiMgN coating and its surface properties. In this work the authors will explain the underlying corrosion protection mechanisms by means of electrochemical and analytical studies. The positive impact of magnesium in the coating relates on its preferred dissolution vs. steel. This causes the potential to shift to more negative direction with respect to the steel substrate and additionally leads to a temporarily passivation of the steel due to alkalization of the surrounding electrolyte by formation of magnesium hydroxide.
Die Präsentation behandelt ein abgeschlossenes DFG Projekt welches die Fragestellung um das Korrosionsverhalten von TiMgN-Hartstoffschichten beleuchtet. Am Beginn des Vorhabens und in dessen weiterem Verlauf standen zahlreiche Ergebnisse die belegen, dass durch den Einbau von Mg in TiN-Hartstoffschichten das Korrosionsverhalten der beschichteten Stahlproben verbessert wird. Es gilt vorab festzuhalten, dass durch die TiMgN-Schicht eine großflächige Abschirmung des Stahls vor dem umgebenden Medium gegeben ist. Jedoch liegt bei nicht auszuschließenden Defekten bis zum Stahl, bedingt durch die Herstellung und/oder dem späteren Gebrauch, eine Gefährdung durch lokale Korrosion vor. Bei Kontakt mit wässriger, chloridhaltiger Lösung benetzt die Oberfläche und verbindet die TiMgN-Schicht über die Defekte mit dem dort freiliegenden Stahlsubstrat über den Elektrolyten. Zur Wirkungsweise des Korrosionsschutzes durch Mg in TiMgN konnten zum Ende des Vorhabens drei grundsätzliche Mechanismen identifiziert werden.
Die Präsentation behandelt ein abgeschlossenes DFG Projekt welches die Fragestellung um das Korrosionsverhalten von TiMgN-Hartstoffschichten beleuchtet. Am Beginn des Vorhabens und in dessen weiterem Verlauf standen zahlreiche Ergebnisse die belegen, dass durch den Einbau von Mg in TiN-Hartstoffschichten das Korrosionsverhalten der beschichteten Stahlproben verbessert wird. Es gilt vorab festzuhalten, dass durch die TiMgN-Schicht eine großflächige Abschirmung des Stahls vor dem umgebenden Medium gegeben ist. Jedoch liegt bei nicht auszuschließenden Defekten bis zum Stahl, bedingt durch die Herstellung und/oder dem späteren Gebrauch, eine Gefährdung durch lokale Korrosion vor. Bei Kontakt mit wässriger, chloridhaltiger Lösung benetzt die Oberfläche und verbindet die TiMgN-Schicht über die Defekte mit dem dort freiliegenden Stahlsubstrat über den Elektrolyten. Zur Wirkungsweise des Korrosionsschutzes durch Mg in TiMgN konnten zum Ende des Vorhabens drei grundsätzliche Mechanismen identifiziert werden.